Analogue black hole lightring and its resonances in an optical fiber
R. Terrier, J. Fatome, B. Kibler, T. Torres
Abstract
We demonstrate the complete observation of a black-hole lightring resonance in an optical analogue. To do so, we generalize the concept of the photon sphere to non-stationnary systems by showing that the lightring is associated to a spatiotemporal caustic and that its complex frequency is determined by the propagation and divergence of this caustic. For an optical soliton acting as an analogue black-hole potential, we predict a characteristic spectral plateau whose boundaries are set by the real part of the lightring frequency, while its spectral decay is governed by the imaginary part. Using a pump-probe experiment in a 5-km-long dispersion-shifted fiber, we observe these signatures for two distinct pump wavelengths. The measured spectra agree with numerical simulations and with the predicted lightring-mode profile, providing direct access to both the oscillatory and decay properties of the resonance. Our results establish a direct experimental connection between black-hole lightrings, spacetime caustics, and quasinormal-mode spectroscopy in a dispersive analogue system.
Create a lesson
Related papers
Analytic Metric for Rotating Black Holes in Higher-Derivative Gravity
Jierui Hu, Dongjun Li, Nicolás Yunes
Locating critical solutions in numerical relativity using automatic differentiation
David Bambague, Miguel Bezares, Katy Clough et al.
Where Chaos Pauses: Sliding-Window Frequency Ratios Reveal Transient Resonances in Relativistic Orbits
Wenfu Cao, Ying Wang, Hongsheng Zhang
Closed timelike curves in modified theories of gravity
Agnik Sen Roy, Sashideep Gutti, Shailesh Kulkarni
Can structure formation distinguish between holographic dark energy models?
Qihong Huang, Bing Xu, Kaituo Zhang et al.
Identifying Exceptional Points in Black Hole Ringdowns
Zhen-Xiao Zhang, Chen Lan, Yi Wang